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Titlebook: Explainable Artificial Intelligence; First World Conferen Luca Longo Conference proceedings 2023 The Editor(s) (if applicable) and The Auth

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發(fā)表于 2025-3-21 18:29:11 | 只看該作者 |倒序?yàn)g覽 |閱讀模式
書目名稱Explainable Artificial Intelligence
副標(biāo)題First World Conferen
編輯Luca Longo
視頻videohttp://file.papertrans.cn/320/319287/319287.mp4
叢書名稱Communications in Computer and Information Science
圖書封面Titlebook: Explainable Artificial Intelligence; First World Conferen Luca Longo Conference proceedings 2023 The Editor(s) (if applicable) and The Auth
描述This three-volume set constitutes the refereed proceedings of the?First World Conference on Explainable Artificial Intelligence, xAI 2023, held in Lisbon, Portugal, in July 2023.?.The 94 papers presented were thoroughly reviewed and selected from the 220 qualified submissions. They are organized in the following topical sections:??.Part I: Interdisciplinary perspectives, approaches and strategies for xAI;?Model-agnostic explanations, methods and techniques for xAI, Causality and Explainable AI;?Explainable AI in Finance, cybersecurity, health-care and biomedicine..Part II: Surveys, benchmarks, visual representations and applications for xAI;?xAI for decision-making and human-AI collaboration, for Machine Learning on Graphs with Ontologies and Graph Neural Networks;?Actionable eXplainable AI, Semantics and explainability, and Explanations for Advice-Giving Systems..Part III:?xAI for time series and Natural Language Processing;?Human-centered explanations and xAI for Trustworthy and Responsible AI;?Explainable and Interpretable AI with Argumentation, Representational Learning and concept extraction for xAI..
出版日期Conference proceedings 2023
關(guān)鍵詞artificial intelligence; interpretable machine learning; causal inference & explanations; argumentative
版次1
doihttps://doi.org/10.1007/978-3-031-44070-0
isbn_softcover978-3-031-44069-4
isbn_ebook978-3-031-44070-0Series ISSN 1865-0929 Series E-ISSN 1865-0937
issn_series 1865-0929
copyrightThe Editor(s) (if applicable) and The Author(s), under exclusive license to Springer Nature Switzerl
The information of publication is updating

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Evaluating Self-attention Interpretability Through Human-Grounded Experimental Protocolntly better than a random baseline regarding average participant reaction time and accuracy. Moreover, data analysis highlights that high probability prediction induces great explanation relevance. This work shows how self-attention can be aggregated and used to explain Transformer classifiers. The
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Causal-Based Spatio-Temporal Graph Neural Networks for?Industrial Internet of?Things Multivariate Tidata features effectively. Experimental results on industrial datasets demonstrate that the proposed method outperforms existing baselines and achieves state-of-the-art performance. The proposed approach offers a promising solution for accurate and interpretable spatio-temporal data forecasting.
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Development of?a?Human-Centred Psychometric Test for?the?Evaluation of?Explanations Produced by?XAI ability. The questionnaire development process was divided into two phases. First, a pilot study was designed and carried out to test the first version of the questionnaire. The results of this study were exploited to create a second, refined version of the questionnaire. The questionnaire was evalu
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